Direct numerical simulations of dilute two-phase flows are conducted to stu
dy the decay of the fluid and particle temperatures in isotropic turbulence
. Both one-way and two-way couplings between phases are considered. The eff
ects of the particle response time (tau(p)), the Prandtl number (Pr), the r
atio of specific heats (alpha), and the mass loading ratio (phi(m)) on the
carrier fluid and particle temperature statistics are studied. The results
indicate that the variance of the fluid and particle temperatures, the diss
ipation rate of the fluid temperature and the high wavenumber values of the
fluid temperature spectrum are increased as the magnitudes of phi(m) and/o
r alpha Pr increase. The decay rate of the fluid and particle temperature v
ariances an similar when the values of alpha Pr are small. For large alpha
Pr values, the variance of the particle temperature is higher than that of
the fluid and is strongly dependent on the initial conditions. The Lagrangi
an auto-correlation coefficient of the particle temperature (R-T(p)) also b
ehaves differently for different magnitudes of alpha and Pr. For small valu
es of alpha, R-T(p) decreases as the magnitude of particle response time in
creases. For large values of alpha, R-T(p) increases with increasing tau(p)
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